Natures Sciences Sociétés · 1997 · 1.1K citations · 0 references
BiogeochemistryBiodiversityEngineeringEnvironmental ImpactsAtmospheric NitrogenEnvironmental CycleTerrestrial EcosystemTerrestrial EcologyBiogeochemical CycleNutrient CycleEcosystem InteractionEnvironmental ChangeAnthropogenic EffectPlant BiodiversityHuman AlterationSpecies Diversity
Increasing atmospheric nitrogen deposition may alter plant biodiversity and ecosystem stability, yet previous studies used unrealistically high N levels, producing uncertain predictions. The study aimed to evaluate how varying levels of simulated N deposition influence ecosystem stability and its underlying mechanisms in a semiarid grassland in northern China. Researchers conducted a manipulative experiment applying several N addition rates to mimic elevated atmospheric deposition and measured community diversity and stability. N addition reduced species richness, evenness, diversity, and dominance; at current deposition levels it had no significant effect on stability, whereas moderate to high additions (4.6–13.8 g N m⁻² yr⁻¹) decreased stability in a nonlinear fashion, with higher stability at the highest rate, and these changes correlated positively with species asynchrony, richness, diversity, and the stability of dominant species and the grass functional group.
Increasing atmospheric nitrogen (N) deposition may affect plant biodiversity, subsequently altering ecosystem stability. While a few studies have explored how simulated N deposition affects community stability and its underlying mechanisms, the experimental levels of N addition used are usually higher than current and future N deposition rates. Thus, their results could produce highly uncertain predictions of ecosystem function, especially if the responses to N deposition are nonlinear. We conducted a manipulative experiment that simulated elevated atmospheric N deposition with several N addition levels to evaluate the effect of N deposition on ecosystem stability and its underlying mechanisms in a semiarid grassland in northern China. Here we show that N addition altered community diversity, reducing species richness, evenness, diversity and dominance. In addition, we found that N addition at current N deposition levels had no significant impact on community stability. In contrast, N addition at levels from 4.6 to 13.8 g N m− 2 yr− 1 significantly decreased community stability, although community stability for the 13.8 g N m− 2 yr− 1 treatment was higher than that for the 4.6 g N m− 2 yr− 1 treatment. These results indicate that the response of community stability to N enrichment is nonlinear. This nonlinear change in community stability was positively correlated with species asynchrony, species richness, and species diversity as well as the stability of dominant species and the stability of the grass functional group. Our data suggest a need to re-evaluate the mechanisms responsible for the effects of N deposition on natural ecosystem stability across multiple levels of N enrichment and that additional experimentation with gradients of N loads more similar to future atmospheric N deposition rates is needed.